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Nuclear Medicine and Artificial Intelligence: Best Practices for Evaluation (the RELAINCE Guidelines)
98
Zitationen
15
Autoren
2022
Jahr
Abstract
An important need exists for strategies to perform rigorous objective clinical-task-based evaluation of artificial intelligence (AI) algorithms for nuclear medicine. To address this need, we propose a 4-class framework to evaluate AI algorithms for promise, technical task-specific efficacy, clinical decision making, and postdeployment efficacy. We provide best practices to evaluate AI algorithms for each of these classes. Each class of evaluation yields a claim that provides a descriptive performance of the AI algorithm. Key best practices are tabulated as the RELAINCE (Recommendations for EvaLuation of AI for NuClear medicinE) guidelines. The report was prepared by the Society of Nuclear Medicine and Molecular Imaging AI Task Force Evaluation team, which consisted of nuclear-medicine physicians, physicists, computational imaging scientists, and representatives from industry and regulatory agencies.
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Autoren
Institutionen
- Washington University in St. Louis(US)
- Mallinckrodt (United States)(US)
- University of Wisconsin–Madison(US)
- Institut Curie(FR)
- Inserm(FR)
- Université Paris Sciences et Lettres(FR)
- Laboratoire de Traitement de l'Information Médicale(FR)
- Université de Bretagne Occidentale(FR)
- Center for Devices and Radiological Health(US)
- Yale University(US)
- Cleveland Clinic(US)
- National Institutes of Health Clinical Center(US)
- Cedars-Sinai Medical Center(US)
- University of Iowa(US)
- University of British Columbia(CA)
- Amsterdam University Medical Centers(NL)